Experimental investigation of ship airwake with wave-induced motions

The turbulent airwake over a moving ship is experimentally investigated in a wind-wave facility using a 1:200 scaled NATO-GD model. Three motion scenarios are examined: heaving, pitching, and combined motions, naturally driven by incoming waves. Particle Image Velocimetry measurements are conducted along the ship centreline and at a typical helicopter rotor hover height. A phase-resolved analysis is performed to isolate the effects of ship displacement, orientation, and moving direction on the airwake. The results show that the ship motion directly contributes to the airwake vertical velocity with a phase delay, while the streamwise velocity is primarily governed by ship geometry. Compared with pure heaving, pitching motion induces stronger phase-dependent turbulence variations over the landing deck due to interactions between upstream structure wakes. Elevated turbulence levels are generally associated with positive heave displacements and negative pitch angles. In addition, the hangar geometry introduces large velocity gradients and alters turbulence distribution across the deck. A probabilistic approach is adopted to quantitatively assess the motion impact on helicopter landing safety. The results demonstrate significant dependence of landing risk on motion type, motion phase, and hover height. Generally, the combined motion and a higher hover height lead to less favourable flying conditions.

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Publication Details

Journal
Ocean Engineering
Published
2026-09-25
DOI
https://doi.org/10.1016/j.oceaneng.2026.128372
Primary Topic
Aerospace and Aviation Technology
Type
article
Field-Weighted Citation Impact
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article

Experimental investigation of ship airwake with wave-induced motions

Kevin Kevin, Jason Monty, Junghoon Lee, Heri Setiawan et al.
Ocean Engineering
Aerospace and Aviation Technology
article

Experimental investigation of ship airwake with wave-induced motions

Kevin Kevin, Jason Monty, Junghoon Lee, Heri Setiawan, Ke Zheng
article en

Abstract

The turbulent airwake over a moving ship is experimentally investigated in a wind-wave facility using a 1:200 scaled NATO-GD model. Three motion scenarios are examined: heaving, pitching, and combined motions, naturally driven by incoming waves. Particle Image Velocimetry measurements are conducted along the ship centreline and at a typical helicopter rotor hover height. A phase-resolved analysis is performed to isolate the effects of ship displacement, orientation, and moving direction on the airwake. The results show that the ship motion directly contributes to the airwake vertical velocity with a phase delay, while the streamwise velocity is primarily governed by ship geometry. Compared with pure heaving, pitching motion induces stronger phase-dependent turbulence variations over the landing deck due to interactions between upstream structure wakes. Elevated turbulence levels are generally associated with positive heave displacements and negative pitch angles. In addition, the hangar geometry introduces large velocity gradients and alters turbulence distribution across the deck. A probabilistic approach is adopted to quantitatively assess the motion impact on helicopter landing safety. The results demonstrate significant dependence of landing risk on motion type, motion phase, and hover height. Generally, the combined motion and a higher hover height lead to less favourable flying conditions.

Ocean EngineeringVol. 368
Defence Science and Technology Group (AU), Bandung Institute of Technology (ID), The University of Melbourne (AU), Department of Defence (AU)
Affordable and clean energy
Openalex Percentile: Top 8%
Aerospace and Aviation Technology
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Experimental investigation of ship airwake with wave-induced motions — Kevin Kevin, Jason Monty, et al. · Ocean Engineering (2026) | TGRS Research Map | TGRS